Vitamin B12 deficiency

Vitamin B12 deficiency

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Coronary artery disease: Clinical
Inflammatory bowel disease: Pathology review
Crohn disease
Ulcerative colitis
Inflammatory bowel disease: Clinical
Macrocytic anemia: Pathology review
Anemia: Clinical
Extrinsic hemolytic normocytic anemia: Pathology review
Microcytic anemia: Pathology review
Sideroblastic anemia
Autoimmune hemolytic anemia
Iron deficiency anemia
Non-hemolytic normocytic anemia: Pathology review
Intrinsic hemolytic normocytic anemia: Pathology review
Anemia of chronic disease
Folate (Vitamin B9) deficiency
Pancreatitis: Pathology review
Pancreatitis: Clinical
Acute pancreatitis
Chronic pancreatitis
Superior mesenteric artery syndrome
Diverticulosis and diverticulitis
Diverticular disease: Pathology review
Diverticular disease: Clinical
Appendicitis: Clinical
Appendicitis
Appendicitis: Pathology review
Irritable bowel syndrome
Anatomy of the abdominal viscera: Large intestine
Vitamin B12 deficiency
Myocardial infarction
ECG cardiac infarction and ischemia
Clot retraction and fibrinolysis
Platelet plug formation (primary hemostasis)
Erythropoietin
Coagulation (secondary hemostasis)
Atrial fibrillation
Anticoagulants: Warfarin
Heart failure
Heart failure: Pathology review
Heart failure: Clinical
Ventricular fibrillation
Ventricular tachycardia
Class III antiarrhythmics: Potassium channel blockers
Atrial flutter
Ventricular arrhythmias: Pathology review
Supraventricular arrhythmias: Pathology review
Acute kidney injury: Clinical
Kidney stones: Pathology review
Kidney stones
Glomerular filtration
Long QT syndrome and Torsade de pointes
Hyperkalemia
Hyperkalemia: Clinical
Chronic kidney disease
Chronic kidney disease: Clinical
Hyperphosphatemia
Hypercalcemia
Kidney stones: Clinical
Renal failure: Pathology review
Diabetes mellitus: Clinical
Metabolic acidosis
Class I antiarrhythmics: Sodium channel blockers
Class IV antiarrhythmics: Calcium channel blockers and others
Class II antiarrhythmics: Beta blockers
Positive inotropic medications
Hyponatremia: Clinical
Hyponatremia
Hypernatremia: Clinical
Hypernatremia
Chronic obstructive pulmonary disease (COPD): Clinical
Obstructive lung diseases: Pathology review
Bronchodilators: Beta 2-agonists and muscarinic antagonists
Emphysema
Pulmonary hypertension
Cor pulmonale
Chronic bronchitis
Muscarinic antagonists
Asthma: Clinical
Asthma
Pulmonary embolism
Deep vein thrombosis and pulmonary embolism: Pathology review
Venous thromboembolism: Clinical
Pneumonia: Pathology review
Pneumonia
Pneumonia: Clinical
Ventilation-perfusion ratios and V/Q mismatch
Shock: Clinical
Shock: Pathology review
Shock
Factor V Leiden
Anticoagulants: Heparin
Hyperthyroidism medications
Hyperthyroidism: Pathology review
Hyperthyroidism: Clinical
Hypothyroidism and thyroiditis: Clinical
Hypothyroidism: Pathology review
Hypothyroidism medications
Pheochromocytoma
Adrenal masses: Pathology review
Renal artery stenosis
Hyperaldosteronism
Respiratory distress syndrome: Pathology review
Acute respiratory distress syndrome: Clinical
Diabetes insipidus and SIADH: Pathology review
Pericardial disease: Clinical
Dementia and delirium: Clinical
Dementia with Lewy bodies
Alzheimer disease
Parkinson disease
Anti-parkinson medications
Traumatic brain injury: Clinical
Concussion and traumatic brain injury
Brown-Sequard Syndrome
Cauda equina syndrome
Meningitis
Myasthenia gravis
Multiple sclerosis
Stroke: Clinical
Cerebral vascular disease: Pathology review
Alcohol use disorder
Seizures: Clinical

Transcript

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Vitamin B12 deficiency refers to low levels of Vitamin B12 in the body.

This can lead to a variety of problems ranging from anemia to soreness of the tongue and neurological dysfunction.

Vitamin B12, also known as cobalamin, is a complex organometallic compound found in animal and dairy products like meat, eggs or milk.

Dairy and animal products are broken down in the stomach by pepsin, which is the active form of a gastric enzyme called pepsinogen, to release B12.

Then, a protein made by parietal cells in the stomach, called intrinsic factor, can bind to B12, and the B12-intrinsic factor complex passes into the intestines.

When the complex reaches the terminal ileum, the enterocytes, which are the special cells lining the intestines, recognize intrinsic factor and absorb the whole complex.

Inside the enterocytes, intrinsic factor gets removed and a special protein called transcobalamin-II binds the free B12 and transports it into the blood and from there, to various target tissues.

Some of the transcobalamin-B12 complex gets to the liver, where B12 can be stored for several years.

B12 is used to synthesize DNA precursors, which is essential for cell division.

First, vitamin B12 accepts a methyl group from methyl tetrahydrofolate or methyl-THF, making methylcobalamin and free tetrahydrofolate, or THF in the process.

THF then gets an extra “methylene” group from serine, an amino acid found within the cells.

THF quickly transfers the methylene to a nucleotide called deoxyuridine monophosphate, or d-UMP for short.

As a result, d-UMP becomes d-TMP or deoxythymidine monophosphate, which can then be converted to thymidine, one of the nucleotides used to build DNA.

Going back, the methylcobalamin that was formed along with THF transfers its methyl group to homocysteine and converts it into an essential amino acid called methionine, thus lowering the levels of homocysteine in the body, too much of which can be harmful.

Alternatively, B12 can be used by the mitochondria in another active form called “adenosylcobalamin” - which is basically B12 with an adenosyl group clinging to it! Adenosylcobalamin acts as a coenzyme for methylmalonyl coenzyme A mutase, an enzyme which converts methylmalonyl co-A into succinyl co-A.

This helps reduce the levels of methylmalonic acid, which can also be harmful if it builds up.

So in short, the consequences of B12 deficiency are that cell division is impaired, and there’s too much homocysteine and methylmalonic acid in the body.

When cell division grinds to a halt, rapidly dividing cells in the bone marrow are affected, like red and white blood cells, as well as platelet precursors.

Inside the bone marrow, red blood cell precursors are normally big and plump, and they undergo a series of cell divisions which results in smaller mature RBCs.

Now with B12 deficiency, at first, the bone marrow pumps out larger, but still mature RBCs called macrocytes.

These RBCs are destroyed in the spleen, which causes a decrease in the total RBC count, or anemia.

In response, the bone marrow compensates by releasing abnormally developed RBC precursors, called megaloblasts, into the blood, and the final result is macrocytic, megaloblastic anemia.

B12 deficiency also affects white blood cell production - so the bone marrow starts releasing large, immature neutrophils, with hypersegmented nuclei - meaning their nucleus has more than 5 lobes.

Finally, severe B12 deficiency may also decrease the production of megakaryocytes, which are the platelet precursors in the bone marrow.

So when all 3 blood cell lines are affected, this results in pancytopenia, which is when red blood cell, white blood cell and platelet count is low.

And folate deficiency also decreases white blood cell, red blood cell, and megakaryocytes production in the bone marrow, also resulting in pancytopenia.

Other rapidly dividing cells are mucosal epithelial cells, especially those of the tongue mucosa.

Have you ever noticed how fast your tongue heals if you accidentally bite it?

That’s because old epithelial cells are replaced with new ones in the blink of an eye!

Okay, not literally that fast, but it is pretty quick.

In B12 deficiency, old epithelial cells aren’t replaced, and this slows down the healing of normal wear and tear of the tongue, which ultimately leads to inflammation of the tongue, known as glossitis.

Next, when homocysteine builds up in the body, some of it is excreted in the urine leading to homocystinuria.

They also build up in the blood, where they bind to the endothelial cells lining blood vessels, causing them to secrete molecules called proinflammatory cytokines.

Key Takeaways

Vitamin B12 deficiency is a clinical condition caused by insufficient levels of Vitamin B12 in the body, which hinders cell division and causes an excess of homocysteine and methylmalonic acid. This can result in macrocytic megaloblastic anemia, characterized by pallor, dyspnea, and fatigue; glossitis or inflammation of the tongue, resulting in swelling and tenderness, dysphonia, and dysphagia; and myelin damage, which may lead to changes in reflexes, decreased muscle function, memory impairment, and, in rare cases, psychosis. Diagnosis of B12 deficiency can be confirmed by conducting a peripheral blood smear, measuring serum levels of vitamin B12, as well as serum homocysteine and methylmalonic acid levels. B12 deficiency is effectively treated with oral supplements or intramuscular injections of vitamin B12.